Nanoscale structure, dynamics and power conversion efficiency correlations in small molecule and oligomer-based photovoltaic devices.

Nano reviews Pub Date : 2011-01-01 Epub Date: 2011-08-12 DOI:10.3402/nano.v2i0.7249
Jodi M Szarko, Jianchang Guo, Brian S Rolczynski, Lin X Chen
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Abstract

Photovoltaic functions in organic materials are intimately connected to interfacial morphologies of molecular packing in films on the nanometer scale and molecular levels. This review will focus on current studies on correlations of nanoscale morphologies in organic photovoltaic (OPV) materials with fundamental processes relevant to photovoltaic functions, such as light harvesting, exciton splitting, exciton diffusion, and charge separation (CS) and diffusion. Small molecule photovoltaic materials will be discussed here. The donor and acceptor materials in small molecule OPV devices can be fabricated in vacuum-deposited, multilayer, crystalline thin films, or spin-coated together to form blended bulk heterojunction (BHJ) films. These two methods result in very different morphologies of the solar cell active layers. There is still a formidable debate regarding which morphology is favored for OPV optimization. The morphology of the conducting films has been systematically altered; using variations of the techniques above, the whole spectrum of film qualities can be fabricated. It is possible to form a highly crystalline material, one which is completely amorphous, or an intermediate morphology. In this review, we will summarize the past key findings that have driven organic solar cell research and the current state-of-the-art of small molecule and conducting oligomer materials. We will also discuss the merits and drawbacks of these devices. Finally, we will highlight some works that directly compare the spectra and morphology of systematically elongated oligothiophene derivatives and compare these oligomers to their polymer counterparts. We hope this review will shed some new light on the morphology differences of these two systems.

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基于小分子和低聚物的光伏设备的纳米级结构、动力学和功率转换效率相关性。
有机材料的光伏功能与纳米级和分子级薄膜中分子填料的界面形态密切相关。本综述将重点介绍有机光伏(OPV)材料中纳米级形态与光收集、激子分裂、激子扩散、电荷分离(CS)和扩散等与光伏功能相关的基本过程之间的关联性研究。本文将讨论小分子光伏材料。小分子光电器件中的供体和受体材料可制成真空沉积的多层晶体薄膜,或旋涂在一起形成混合的体异质结(BHJ)薄膜。这两种方法导致太阳能电池活性层的形态迥异。关于哪种形态更适合优化 OPV,目前仍存在激烈的争论。导电薄膜的形态已被系统地改变;利用上述技术的变化,可以制造出各种质量的薄膜。可以形成高度结晶的材料、完全无定形的材料或中间形态的材料。在这篇综述中,我们将总结过去推动有机太阳能电池研究的主要发现,以及小分子和导电低聚物材料的当前先进水平。我们还将讨论这些设备的优缺点。最后,我们将重点介绍一些直接比较系统拉长的低聚噻吩衍生物的光谱和形态的研究成果,并将这些低聚物与其聚合物对应物进行比较。我们希望这篇综述能对这两种体系的形态差异带来一些新的启发。
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